4.7 Article

Effects of various antibiotics on aerobic nitrogen removal and antibiotic degradation performance: Mechanism, degradation pathways, and microbial community evolution

期刊

JOURNAL OF HAZARDOUS MATERIALS
卷 422, 期 -, 页码 -

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ELSEVIER
DOI: 10.1016/j.jhazmat.2021.126818

关键词

Selective stress; Long-term aerobic nitrogen removal-moving; bed biofilm reactor; Achromobacter sp; JL9; Heterotrophic nitrification and aerobic; denitrification; Total nitrogen removal efficiency

资金

  1. National Natural Science Foundation of China [21477039, U1401235, 2016B020240005]

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The selective inhibitory effects of various antibiotics on aerobic nitrogen removal were investigated, showing different removal efficiencies and degradation pathways for different antibiotics. High-throughput sequencing revealed that aerobic denitrifying, recalcitrant pollutant degrading, and antibiotic-resistant bacteria dominate during the community evolution process.
Little information about the selective stress of various antibiotics and how they influence different stages of aerobic nitrogen removal is available. A long-term aerobic nitrogen removal-moving bed biofilm reactor was established by the inoculation of Achromobacter sp. JL9, capable of heterotrophic nitrification and aerobic denitrification, and aerobic activated sludge. The nitrogen removal and antibiotic degradation performances of various antibiotics were then measured. High total nitrogen (91.83% and 91.51%) removal efficiencies were achieved with sulfamethoxazole or no antibiotics, and lower efficiencies were observed with other antibiotics (trimethoprim, teicoplanin, and ciprofloxacin). These results suggest that various antibiotics have different selective inhibitory effects on aerobic nitrogen removal. Additionally, all antibiotics were partly degraded; proposed degradation pathways according to the detected intermediates included ring-opening, S-N bond cleavage, amination, hydroxylation, and methylation. High-throughput sequencing indicated that aerobic denitrifying, recalcitrant pollutant degrading, and antibiotic-resistant bacteria dominate during the community evolution process.

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